This application claims priority of Taiwanese application no. 094112548 filed on Apr. 20, 2005.
1. Field of the Invention
This invention relates to a method for producing mesoporous nanoscale iron-containing metal particles, especially, mesoporous nanoscale iron-containing metal particles with superior BET specific surface area and reactivity.
2. Description of the Related Art
In recent years, nanotechnology has a great impact on the fields of biotechnology, energy source, information, microelectromechanics, and environmental engineering due to the specific properties of nanoscale particles. Specifically, it is found that when the dimensions of a particulate particle are reduced to nano-scale, the physicochemical properties thereof are markedly changed, and reactivity thereof is greatly improved. Therefore, researches have been focused on particles having a size ranging from 1 to 100 nm,
In general, the methods for producing nanoscale particles include: (1) gas condensation method; (2) mechanical alloying method; and (3) solution chemistry methods. Among the solution chemistry methods, the chemical reduction method is commonly used because the nanoparticles thus formed have a relatively small size and an even distribution in the particle size.
In the known chemical reduction method for producing nanoscale iron particles, iron salt is reduced by a reducing agent, is nucleated in an over-saturated system, and grows and is precipitated so as to form nanoscale zero-valent iron. Ferric chloride (FeCl3) reduced by sodium borohydride (NaBH4) so as to form nanoscale zero-valent iron particles having BET specific surface area of 31.4 m2/g is disclosed in Choe, S., Y. Y. Chang, K. Y. Hwangnd, and J. Khim, 2000, “Kinetics of Reductive Denitrification by Nanoscale Zero-Valent Iron,” Chemosphere, 41(8), pp. 1307-1311, or having BET specific surface area of 33.5 m2/g is disclosed in Wang, C. B. and W. X. Zhang, 1997, “Synthesizing Nanoscale Iron Particles for Rapid and Complete Dechlorination of TCE and PCBs, ” Environmental Science & Technology, 31(7), pp. 2154-2156.
In the chemical reduction process, nanoscale particles with desired properties can be obtained by adjusting the reactant ratio, the way of mixing the reactants, the pH value, the reaction rate, the reaction temperature, the reaction pressure, and the solvent used in the reaction system. The characteristics of nanoscale particles reside in their high reactivity and high surface area-to-volume ratio. However, the nanoscale iron particles reported in the literatures or that are commercially available have BET specific surface area less than 38 m2/g such that the reactivity improvement is limited.
Therefore, there is a need in the art to provide a method for producing nanoscale particles that can enhance BET specific surface area of nanoscale particles to thereby improve reactivity thereof.
Therefore, the object of the present invention is to provide a method for producing mesoporous nanoscale iron-containing metal particles that can overcome the aforesaid shortcoming associated with the prior art.
According to one aspect of this invention, a method for producing mesoporous nanoscale iron-containing metal particles comprises the steps of: adding dropwise a reducing agent into an iron salt containing aqueous solution under a condition that the molar ratio of the reducing agent to the iron salt ranges from 6 to 10 times the stoichiometric ratio of the reducing agent to the iron salt to produce mesoporous nanoscale iron-containing metal particles; separating the mesoporous nanoscale iron-containing metal particles from the aqueous solution; and drying the mesoporous nanoscale iron-containing metal particles.
According to another aspect of this invention, a method for producing mesoporous nanoscale iron-containing metal particles comprises the steps of: adding dropwise an iron salt containing aqueous solution into a reducing agent under a condition that the molar ratio of the reducing agent to the iron salt ranges from 4 to 10 times the stoichiometric ratio of the reducing agent to the iron salt to produce mesoporous nanoscale iron-containing metal particles; separating the mesoporous nanoscale iron-containing metal particles from the aqueous solution; and drying the mesoporous nanoscale iron-containing metal particles.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiments of this invention, with reference to the accompanying drawings, in which:
Referring to
Preferably, the adding rate of the reducing agent ranges from 0.185 to 0.55 ml/sec based on one liter of the iron salt containing aqueous solution.
Preferably, the iron salt is a compound selected from the group consisting of: ferric chloride (FeCl3), ferrous chloride (FeCl2), ferric sulfide (Fe2(SO4)3), ferrous sulfide (FeSO4), ferric nitride (Fe(NO3)3), ferrous nitride (Fe(NO3)2), ferric bromide (FeBr3), ferrous bromide (FeBr2), and combinations thereof.
The reducing agent is in the form of an aqueous solution, and is selected from the group consisting of: sodium borohydride (NaBH4), potassium borohydride (KBH4), lithium borohydride (LiBH4), sodium carbonate (Na2CO3), potassium carbonate (K2CO3), sodium hydroxide (NaOH), potassium hydroxide (KOH), lithium hydroxide (LiOH), methanol, ethanol, lithium aluminum tetrahydride (LiAlH4), ammonium ion (NH4+), hydrazine (N2H4), citric acid (C6H8O7), sodium citrate (Na3C6H5O7), potassium citrate (K3C6H5O7), and combinations thereof.
Specifically, as shown in
2FeCl3+6NaBH4+18H2O→2Fe(s)↓+21H2O+6B(OH)3+6NaCl
Under vigorous agitation at ambient temperature and atmosphere, 100 ml NaBH4 solution is added slowly and dropwise into 100 ml FeCl3 solution under conditions that the titration rate is 0.055 ml/sec, the molar ratio of the reducing agent to the iron salt is 22.5, and the pH value of the reaction system ranges from 6 to 11. In this embodiment, the molar ratio (45/2=22.5) of the reducing agent to the iron salt is 7.5 times the stoichiometric ratio (6/2=3) of the reducing agent to the iron salt. During the process of titration, nucleuses are produced at the over-saturated condition and grow to desired nanoscale iron-containing metal particles through poly-nuclear growth of surface process. Subsequently, the nanoscale iron-containing metal particles thus formed are separated from the solution using suitable means, followed by a drying step using a freeze dryer.
The structure of the nanoscale iron-containing metal particles thus formed was observed using Field Emission Scanning Electron Microscopy (FESEM). As shown in
The structure of the nanoscale iron-containing metal particles thus formed was observed using Field Emission Scanning Electron Microscopy (FESEM). As shown in
As shown in
As shown in
Pd2++Fe0→Pd0+Fe2+
Fe0 in the reaction serves as a carrier. Pd0 grows on Fe0 during the reaction so as to form bimetallic particles of palladized iron, which have a structure of particle-on-particle (other than core-shell structure). The BET specific surface area of the nanoscale bimetallic particles thus formed is 101 m2/g, and the pore diameter of the mesoporous structure thereof ranges from 30 to 40 Å.
The method of the fourth preferred embodiment of this invention is conducted at a large scale. That is, 2 L of 0.5M NaBH4 solution is added dropwise into 2 L of 0.09M FeCl3 solution under a condition that the titration rate is 0.37 ml/sec for 1.5 hrs. The obtained nanoscale iron-containing particles have a BET specific surface area ranging from 150-160 m2/g.
It is noted that, by controlling the molar ratio of the reducing agent to the iron salt within a range of from 4 to 10 times or 6 to 10 times of the stoichiometric ratio of the reducing agent to the iron salt, the nanoscale iron-containing metal particles produced by the method of this invention can have a higher BET specific surface area (45-175 m2/g) than that in the prior art (<38 m2/g) to result in improved reactivity.
While the present invention has been described in connection with what is considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation and equivalent arrangements.
Number | Date | Country | Kind |
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094112548 | Apr 2005 | TW | national |